EP0440073A1 - Thermostatic expansion valve with electronic controller - Google Patents
Thermostatic expansion valve with electronic controller Download PDFInfo
- Publication number
- EP0440073A1 EP0440073A1 EP91100767A EP91100767A EP0440073A1 EP 0440073 A1 EP0440073 A1 EP 0440073A1 EP 91100767 A EP91100767 A EP 91100767A EP 91100767 A EP91100767 A EP 91100767A EP 0440073 A1 EP0440073 A1 EP 0440073A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- thermistor
- temperature
- refrigerant
- inlet
- operative
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
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Classifications
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60H—ARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
- B60H1/00—Heating, cooling or ventilating devices
- B60H1/32—Cooling devices
- B60H1/3204—Cooling devices using compression
- B60H1/3205—Control means therefor
- B60H1/3211—Control means therefor for increasing the efficiency of a vehicle refrigeration cycle
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B41/00—Fluid-circulation arrangements
- F25B41/30—Expansion means; Dispositions thereof
- F25B41/31—Expansion valves
- F25B41/34—Expansion valves with the valve member being actuated by electric means, e.g. by piezoelectric actuators
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B49/00—Arrangement or mounting of control or safety devices
- F25B49/02—Arrangement or mounting of control or safety devices for compression type machines, plants or systems
- F25B49/022—Compressor control arrangements
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B49/00—Arrangement or mounting of control or safety devices
- F25B49/02—Arrangement or mounting of control or safety devices for compression type machines, plants or systems
- F25B49/027—Condenser control arrangements
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60H—ARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
- B60H1/00—Heating, cooling or ventilating devices
- B60H1/32—Cooling devices
- B60H2001/3236—Cooling devices information from a variable is obtained
- B60H2001/3255—Cooling devices information from a variable is obtained related to temperature
- B60H2001/3264—Cooling devices information from a variable is obtained related to temperature of the refrigerant at an expansion unit
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60H—ARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
- B60H1/00—Heating, cooling or ventilating devices
- B60H1/32—Cooling devices
- B60H2001/3269—Cooling devices output of a control signal
- B60H2001/3276—Cooling devices output of a control signal related to a condensing unit
- B60H2001/3277—Cooling devices output of a control signal related to a condensing unit to control the air flow
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2341/00—Details of ejectors not being used as compression device; Details of flow restrictors or expansion valves
- F25B2341/06—Details of flow restrictors or expansion valves
- F25B2341/068—Expansion valves combined with a sensor
- F25B2341/0683—Expansion valves combined with a sensor the sensor is disposed in the suction line and influenced by the temperature or the pressure of the suction gas
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2600/00—Control issues
- F25B2600/11—Fan speed control
- F25B2600/111—Fan speed control of condenser fans
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B2700/00—Sensing or detecting of parameters; Sensors therefor
- F25B2700/21—Temperatures
- F25B2700/2117—Temperatures of an evaporator
- F25B2700/21174—Temperatures of an evaporator of the refrigerant at the inlet of the evaporator
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B30/00—Energy efficient heating, ventilation or air conditioning [HVAC]
- Y02B30/70—Efficient control or regulation technologies, e.g. for control of refrigerant flow, motor or heating
Definitions
- the present invention relates to ways or means of controlling flow of liquid refrigerant in a liquid vapor refrigeration system of the type having a compressor for pumping pressurized refrigerant through a condenser and through an expansion means for low pressure circulation through an evaporator where heat is absorbed to effect vaporization of the liquid refrigerant and cooling the surrounding air and for returning the vaporized refrigerant to the compressor inlet.
- the present invention relates particularly to refrigeration systems on board an automotive vehicle for air conditioning the vehicle passenger compartment.
- Such automotive passenger compartment air conditioning systems are known to employ a thermal expansion valve having a liquid filled chamber in heat transfer thermal relationship with a refrigerant flowing to return to the compressor such that changes in the sensed temperature of the refrigerant create expansion or contraction of the liquid in the chamber to thereby provide pressure forces for moving a diaphragm to control movement of the flow control valve.
- Thermal expansion valves of the above-described type are thus mechanically self-contained and function independently of the electrical controls employed for energizing and deenergizing the clutch for coupling the compressor to the vehicle engine.
- the compressor clutch has typically been energized and deenergized by a pressure switch disposed to sense the saturation pressure at the pressure discharge side of the evaporator or in the line between the expansion valve and the evaporator inlet.
- a pressure switch disposed to sense the saturation pressure at the pressure discharge side of the evaporator or in the line between the expansion valve and the evaporator inlet.
- It has further been desired to eliminate the pressure switch in view of the cost of providing a pressure switch having sufficient proof pressure rating yet sufficient accuracy for cycling the compressor in response to small changes in saturation pressure.
- the present invention provides for direct electrical sensing of the saturation temperature of the refrigerant in a refrigeration or air conditioning system.
- the present invention enables a microprocessor to generate, from a look-up table of the properties of the refrigerant, an electrical control signal to cycle the compressor when the saturation pressure determined from the look-up table is out of a desired range.
- the present invention employs a self-heated thermistor for the purpose of determining the saturation temperature.
- the present invention employs the widely used relatively inexpensive to manufacture mechanical thermal expansion valve with the self-heated thermistor disposed at the high pressure inlet side of the valve.
- the signal generated by the microprocessor based on the saturation pressure is used to control cycling of the condenser cooling fan.
- a separate thermistor is disposed in the low pressure discharge line from the evaporator to sense actual refrigerant temperature.
- the second thermistor may be located in the low pressure inlet line to the evaporator.
- the temperature sensed by the second thermistor is employed by a microprocessor to cycle the compressor clutch on or off based on temperature and the assumption that the temperature sensed by the second thermistor is basically saturation temperature.
- the present invention thus eliminates the need for a separate pressure switch to sense saturation pressure for controlling compressor clutch cycling and utilizing a self-heated thermistor to determine the saturation pressure on the high pressure side of the system to control cycling of the condenser cooling fan.
- control system of the present invention has a refrigerant compressor 12 coupled by means of electric clutch 14 to a drive pulley 16 driven by belt 18 connected to a source of power, as for example the engine of an automotive vehicle.
- High pressure refrigerant is discharged from the compressor through conduit 20 to the condenser indicated generally at 22 which is cooled by fan 24 driven by fan motor 26.
- the cooled liquid refrigerant discharges from the condenser through conduit 28 to the inlet of the expansion means such as the thermal expansion valve indicated generally at 30.
- the low pressure discharge of the thermal expansion valve 30 is discharged at the outlet thereof through conduit 32 to the inlet of evaporator 34 which absorbs heat from the surrounding air such as in the air in passenger compartment of a vehicle for providing passenger comfort therein.
- Evaporator 34 discharges through conduit 36 and through return passage 38 formed through the body 31 of expansion valve 30 and conduit 40 to the compressor suction inlet.
- a self-heated thermistor 42 is disposed preferably in valve body 31 at the inlet for refrigerant flow thereover and receives a voltage from junction 52 through resistor R24 which is connected through lead 50 to controller 64.
- the self-heated thermistor 42 is an NTC thermistor manufactured by Fenwall Electronics, 63 Fountain Street, Farmingham, Massachusettes 01701 and has an identification FD21J1-W and has a resistance of 100 OHMS at 25 degrees C.
- Junction 52 is also connected through lead 60 to one input of a comparator 62 which is controlled by the microcomputer or microprocessor based controller 64 which is powered by a power supply including voltage regulator 44.
- a drive signal is provided along lead 66 from controller 64 to fan relay 68 which controls the fan motor 26 along lead 70.
- Fan relay 68 receives power for the motor along lead 82 from junction 76.
- the motor 26 has the opposite side thereof connected to the system ground along lead 72.
- the controller 64 also connected along lead 74 to the compressor clutch 14 which receives power through junction 76 which is powered through the operator select switch 78 and the vehicle power supply indicated generally at 80.
- the controller 64 has its ground connected through lead 84 to the system ground; and, the voltage regulator 44 receives power through lead 86 and junction 76.
- a second thermistor 88 is disposed in the evaporator discharge line 36 and preferably at the inlet of passage 38 in valve body 31.
- Thermistor 88 receives power directly from junction 54 along lead 89 and has the remaining lead 92 thereof connected to the comparator 62.
- the thermistor 88 may alternatively be located at the evaporator inlet as shown in dashed outline in Figure 1; however, this alternative arrangement may be employed only where the evaporator 34 is of the type having a pressure drop thereacross generally not greater than about 20 psi (138KPa).
- the circuit schematic for the control system is shown wherein the power limiting resistor R24 receives power from the voltage regulator 44 along lead 50 and supplies current through junction 52 to the self-heated thermistor 42 which is grounded through lead 58 to the system ground.
- the voltage at junction 52 comprises a reference voltage and is also applied along lead 60 through resistor R23 and to the positive input of comparator comprising a portion of device U1 at pin 5 thereof and U1 forms a part of comparator circuit 62 of Figure 1.
- the negative input at pin 4 of U1 is connected through junction 90 to the collector of a transistor switch Q4 which has its emitter grounded and the base receiving a signal along lead 98 through resistor R22 from the microprocessor U3.
- microprocessor U3 employed in the present practice has a manufacturer's designation MC68HCO5TK and is available from Motorola Semiconductor Products, 2060 Elgonquin Road, Schaumburg, Illinois 60195.
- junction 90 is biased by the system voltage V B from power supply 44 through resistors R20 and R21 which have the junction 92 therebetween connected to ground through a reverse poled zener diode D4.
- the comparator U1 has its output at pin 2 thereof connected through junction 94 and forward poled diode D3 through junction 96 to pin 2 of the microprocessor U3. Junction 96 is protected against transients by capacitor C8 and resistor R34 which are connected to ground.
- the microprocessor U3 includes a ceramic resonator Y1 which provides a source of timing to the microprocessor through pins 27 and 28; and, in the presently preferred practice the resonator Y1 acts as an oscillator having a frequency of preferably four megaHertz.
- the control circuit of the present invention receives power from the network 44 which includes a voltage regulator device U5 which provides a regulated five (5) volts D.C.
- the voltage regulator U5 is available from Motorola and has a manufacturer's designation MC7805BTD.
- the device U5 is protected by capacitors C14 and C13 and transient suppressors comprising diode D15 and resistor R41 in series therewith and zenior diode D14 and compacitor C15 in parallel therewith.
- the network 44 provides a source of five volt power to the solid state devices U2, U3 and U4 and voltage V B of approximately 11-12 volts for powering other circuit components such as devices U1 and Q3.
- the microprocessor U3 sends a signal through R2 to the base of a transistor switch Q3, turning Q3 "ON", which applies V B to R24 and causes current flow through self-heated thermistor 42.
- Q3 has its collector biased to a regulated voltage V B from the power supply and its collector connected through resistor R2 to the microprocessor for receiving a signal therefrom.
- Q4 Upon receipt of a signal from the device U3 along lead 98 through R22 to the base of Q4, Q4 is turned “ON”; and, Q4 keeps capacitor C1 discharged when Q4 is "ON”.
- the microprocessor turns Q4 "OFF” capacitor C1 charges; and the microprocessor starts counting internally.
- U1 As the voltage on C1 exceeds the voltage on pin 5 of comparator U1, U1 conducts and provides a signal transition through junction 96 and pin 2 of the microprocessor and the microprocessor stops counting.
- the microprocessor U3 then reads the count as the saturation temperature from a look-up table of known properties of the particular refrigerant employed, U3 determines the saturation pressure.
- variations in the temperature are sensed by detecting changes in the voltage drop across the resistor R24 as the voltage at junction 52, which is applied through resistor R23 to the positive input at pin 5 of U1.
- the microprocessor is operative in response to temperature measurement and determination of the saturation pressure by thermistor 42 at or below 240psi 1656 (KPa) to provide an output signal along line 66 through resistor R29 to the base of transistor switch Q6.
- the microprocessor turns Q6 "OFF" at 180 psi (1242KPa) in the presently preferred practice.
- Q6 has its emitter grounded and collector connected through junction 108, which is biased through resistor R32 by the system voltage V B .
- the input to the base of Q6 is biased through R26 by the five volt system power at junction 110.
- Junction 108 is connected to the base of the power switch device Q9 which has its output pin connected through lead 66 to the fan relay 68; and, the remaining output pin is connected to ground through junction 106.
- microprocessor U3 In operation, when the thermistor 42 senses the saturation pressure below 240 psi (1656KPa) microprocessor U3 provides a signal along lead 66 to turn “OFF” Q6 which in turn turns “ON” Q9 to energize the fan relay. When the thermistor 42 senses saturation pressure above 350psi (2415KPa) the microprocessor turns Q6 and Q9 "OFF" deenergizing the fan relay and compressor clutch.
- the second thermistor 88 receives a regulated five volts from the voltage regulator 44 along lead 89 and the thermistor is connected to junction 114 which is connected to input pin 6 of device U4 which comprises a timer device bearing industry standard designation 555 and which upon receipt of a trigger signal at pin 2 thereof from the microprocessor U3 is operative to cause compacitor C12 to charge; and, the microprocessor U3 starts counting internally.
- U4 gives an output on pin 3 to the microprocessor U3 at pin 2 and causes the microprocessor counter to stop.
- the microprocessor compares the voltage represented by the count with values in a look-up table for the particular refrigerant and the temperature derived from the table is assumed to be saturation temperature.
- the microprocessor is operative to emit a signal along lead 100 to Q5 which in turn turns Q8 "ON” to energize the compressor clutch.
- the microprocessor is operative to turn "ON” Q5 and turns Q8 “OFF” to deenergize the compressor clutch 14.
- Microprocessor U3 provides an output signal along lead 100 to junction 102 and through resistor R28 to the base of transistor Q5 which has its emitter grounded and its collector connected to junction 104.
- Junction 104 is biased through resistor R31 by the voltage V B and connected to the base of power switch device Q8, which applies power through its output junction along lead 74 to the compressor clutch 14.
- Q5 is turned “ON”, causing Q8 to be turned “OFF” by the microprocessor U3 when the temperature measured by the thermistor 88 is below 18 degrees F and turned “ON” when the temperature measured by T88 is greater than 40 degrees F.
- the remaining lead of power switch Q8 is connected through junction 106 which is connected through resistor R37 to ground for completing the circuit to the compressor clutch.
- Device U4 has pin 5 thereof grounded through capacitor C5 and pin 4 comprising a reset connected to the microprocessor by lead 118.
- the thermistor 88 in the present practice comprises a 30K OHM NTC thermistor available from Fenwall Electronics, 63 Fountain Street, Farmingham, Massachusettes 01701, and bears manufacturer's designation UUR43J21. Capacitor C4 is placed across the leads of thermistor 88 for transient suppression.
- the output drivers Q8 and Q9 have their output lines protected against transients by the diode network comprising forward poled diode D9 connected to lead 74 and forward poled diode D12 connected to lead 66 in series with reversed poled zener diode D13 connected to junction 112.
- Power supply 44 includes a high and low battery voltage detection circuit indicated generally at 120 which applies the 11 volt system voltage V B to resistor R16 and R17 series connected to ground with the junction 122 therebetween connected to the positive input of a comparator comprising pin 7 of device U1 through limiting resistor R10.
- a transient suppression capacitor C6 is connected from junction 122 to ground.
- the negative input of the comparator comprising pin 6 of device U1 is connected through limit resistor R12 to junction 124 which is connected to the center tap between resistors R14 and R15 which are series connected to ground with the regulated five volt supply voltage applied to resistor R14.
- the voltage from the divider comprising resistors R16 and R17 which may be expressed at follows: exceeds the voltage from the divider receiving the regulated five volts which may be expressed as: the device U1 conducts through pin 1 and lead 126 through forward poled diode D5 to junction 128 which is connected to an input of the microprocessor U3.
- the system voltage V B is applied through resistor R18 to junction 130 which has connected thereto R19 which is grounded such that the resistors R19, R18 serve as a voltage divider; and, the voltage at junction 130 may be expressed as follows:
- V LO is applied through limiting resistor R13 to a negative input at pin 8 of device U1 which has applied to a positive input at pin 9 thereof the voltage from junction 124 through limit resistor R11.
- the device U1 thus acts as a comparator and when the voltage at junction 130 V LO is less than the voltage V REF at junction 124, U1 conducts through its output pin 14 along line 132 through forward poled diode D6 to junction 128 and the input of the microprocessor.
- the output of U1 at pin 1 is provided with a positive feedback resistor R9 and is biased from the regulated five volt supply through resistor R6.
- the output at pin 14 of U1 is provided with a positive feedback resistor R8 and is biased by the five volt regulated supply through resistor R7.
- the microprocessor When the microprocessor receives a signal from junction 128 indicating that the battery voltage is either above a predetermined high value of 17 volts or less than a predetermined value of 8.5 volts, the microprocessor is operative to provide a signal along output lead 100 to disable the clutch 14 along lead 74.
- the microprocessor is reset by voltage from junction 134 which is biased by the five volt regulated supply through resistor R45 as applied to junction 134 which is grounded through capacitor C16, junction 134 being connected to the input reset pin 1 of U3.
- An overcurrent protection circuit is provided, indicated generally at 136, and utilizes resistor R37.
- the output current through drivers Q8, Q9 is sensed by R37 through junction 106. If either the compressor clutch or the fan relay load is shorted, a greater voltage drop occurs across R37; and, this voltage drop is applied through resistors R36, R35 as inputs at pins 2 and 3 of a amplifier comprising device U2.
- the output at pin 1 of U2 is applied through resistor R39 to the negative input at pin 6 of comparator portion of device U2 which has the positive input at pin 5 biased through resistor R27 to a reference voltage from junction 138.
- Junction 138 is biased by a voltage divider network comprising resistor R30 and R33 in series with R30 supplied with five volts regulated and R33 grounded, thus providing the voltage:
- junction 140 is connected to an input of the microprocessor and also along lead 140 through reistor R41 to pin 11 of the positive input of a comparator portion of U1.
- the negative input pin 10 of a comparator portion of U1 is biased through resistor R42 with V138.
- U1 conducts through output pin 13 which is connected to junction 146 which is connected through reverse poled diodes D7, D8 to the base of Q8 and Q9, thereby turning "OFF" Q8 and Q9 and stopping the overcurrent condition.
- Junction 146 is biased by the system voltage V B through resistor R44 and the output at pin 13 of U1 has a positive feedback resistor R43 connected to pin 11 at the input of U1.
- the microprocessor is powered up to the system twelve volts at step 144 by closure of switch 78 (see Fig. 1); and, at step 146 the minimum compressor "ON" time lag is set for deep cycle.
- the compressor clutch "ON" time is 7 seconds. If the temperature T88 is between 75 and 90 degrees F then the compressor clutch "ON" time is 60 seconds; and, if T88 is greater than 90 degrees F then a full deep cycle compressor clutch "ON" time is set at 180 seconds.
- step 148 a determination is made whether T88 is less than the clutch "OFF" temperature which in the presently preferred practice is 18 degrees F; and, if T88 is not less than 18 degrees F, the compressor clutch 14 and the fan relay 68 are both energized at step 150.
- a ten second timer delays, at step 152, the energization of the 18 OHM load resistor R24, for the self-heated thermistor 42 as indicated at step 154.
- step 164 a determination is made as to whether the HPCO flag has timed out; and, if it has, a determination is made at step 166 whether T88 is greater than the clutch "ON" temperature which in the presently preferred practice is 40 degrees F. If T88 at step 166 is greater than 40 degrees F, the clutch is energized; and, the minimum “ON" flag is set for applying power to the 18 OHM load resistor R24 for a period of seven seconds at step 168.
- step 156 if the temperature T88 is less than the clutch "OFF" temperature 18 degrees F, a determination is made at step 170 whether the minimum time has been satisfied; and, if it has, the microprocessor proceeds to step 162. However, if the minimum time at step 170 has not been satisfied a determination is made at step 172 as to whether T88 is less than the clutch "OFF" temperature of 18 degrees F; and, if not, the system proceeds to step 158. However, if T88 is less than 18 degrees F at step 172, the system proceeds to step 162 to disengage the clutch and fan.
- step 158 if the self-heated thermistor temperature T42 is not greater than the HPCO pressure of 350 psi, a determination is made at step 174 whether T42 is greater than the fan "ON" pressure which is preferably 240 psi (276KPa); and, if this is the case, the condenser fan is turned on at step 176 and the system returns to step 156.
- the fan "ON" pressure which is preferably 240 psi (276KPa
- T42 at step 174 is not greater than the fan "ON" pressure of 240 psi (1655KPa) a determination is made at step 178 whether T42 is less than the fan "OFF" pressure which is preferably 180 psi (1241KPa); and, if this is the case, the microprocessor turns “OFF” the condenser fan at step 180, whereupon the system returns to step 156. However, if it is determined at step 178 that T42 is not less than the fan "ON" pressure of 240 psi, the system returns to step 156 with the condenser fan remaining on.
- the present invention thus provides a unique and novel control system for a refrigeration or air conditioning system wherein a mechanical thermal expansion valve is employed but thermistors are disposed in the system to sense temperature electrically thereby enabling a microprocessor controller to provide control signals for the electrically operated compressor clutch and condenser fan motor.
- the present invention employs a self-heated thermistor at the inlet or high pressure side of the thermal expansion valve to enable determination of saturation pressure in the high pressure side of the system for providing signals to cycle the condenser fan.
- a direct refrigerant temperature sensing thermistor is employed at the evaporator outlet, or alternatively the evaporator inlet for low pressure drop evaporators, to enable a determination of saturation temperature from a look-up table of refrigerant properties to provide an electrical control signal for cycling the compressor clutch.
- the present invention thus provides a unique and novel system for electronically controlling the compressor clutch and condenser fan in an air conditioning system and yet permits the use of a economical and reliable mechanical thermal expansion valve.
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- Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Mechanical Engineering (AREA)
- Thermal Sciences (AREA)
- General Engineering & Computer Science (AREA)
- Air-Conditioning For Vehicles (AREA)
- Air Conditioning Control Device (AREA)
Abstract
A refrigeration system employing a mechanical thermal expansion valve (30) with a self-heated thermistor (42) sensing saturation temperature at the high pressure inlet and a second thermistor sensing saturation temperature at the evaporator outlet. A microprocessor based controller (64) compares the sensed temperature with stored limits and provides output signals to a relay for cycling the condenser fan (24) responsive to high side pressure and the compressor clutch (14) responsive to the low pressure side temperature. For low pressure drop evaporators (34), the second thermistor (88) may be disposed at the evaporator inlet.
Description
- The present invention relates to ways or means of controlling flow of liquid refrigerant in a liquid vapor refrigeration system of the type having a compressor for pumping pressurized refrigerant through a condenser and through an expansion means for low pressure circulation through an evaporator where heat is absorbed to effect vaporization of the liquid refrigerant and cooling the surrounding air and for returning the vaporized refrigerant to the compressor inlet. The present invention relates particularly to refrigeration systems on board an automotive vehicle for air conditioning the vehicle passenger compartment. Such automotive passenger compartment air conditioning systems are known to employ a thermal expansion valve having a liquid filled chamber in heat transfer thermal relationship with a refrigerant flowing to return to the compressor such that changes in the sensed temperature of the refrigerant create expansion or contraction of the liquid in the chamber to thereby provide pressure forces for moving a diaphragm to control movement of the flow control valve.
- Thermal expansion valves of the above-described type are thus mechanically self-contained and function independently of the electrical controls employed for energizing and deenergizing the clutch for coupling the compressor to the vehicle engine. Heretofore, the compressor clutch has typically been energized and deenergized by a pressure switch disposed to sense the saturation pressure at the pressure discharge side of the evaporator or in the line between the expansion valve and the evaporator inlet. However, it has been desired to eliminate the pressure switch as a source of service problems particularly leakage in the switch or its connections to the line. It has further been desired to eliminate the pressure switch in view of the cost of providing a pressure switch having sufficient proof pressure rating yet sufficient accuracy for cycling the compressor in response to small changes in saturation pressure.
- It has therefore been desired to employ a mechanical thermal expansion valve to benefit from the low cost and proven reliability thereof, and to provide an alternative to a pressure switch for cycling the compressor clutch in an automotive air conditioning system. It has further been desired to find a way or means of generating an electric signal in response to small changes of the saturation pressure in an automotive air conditioning system evaporator inlet line in a manner which would enable the use of a microprocessor to benefit from the sophistication of the control available from a microprocessor.
- It has also been desired to provide a way or means of controlling an electrically operated condenser cooling fan in response to upper and lower limit conditions of refrigerant pressure and yet retain the use of a mechanical thermal expansion valve.
- It is known for example as taught in U.S. Patent 4,841,734, commonly owned with the present invention, to utilize a "self-heated" thermistor having a controlled current flow therethrough and to sense the voltage drop across a resistor in series with the thermistor and to convert the voltage drop to saturation pressure from a look-up table of known refrigerant properties in a refrigeration system and particularly an automotive air conditioning system. In the aforesaid patent the saturation pressure signal from a microprocessor is used to deenergize the compressor when excessive saturation pressure is detected. The self-heated thermistor is disposed on the pressure line near the inlet to the expansion valve means.
- It is also known as taught for example in U.S. Patent 4,835,976, commonly owned with the present application, to employ a self-heated thermistor in the suction line between the evaporator and the compressor inlet to determine the quality of the refrigerant flowing thereover for enabling a microprocessor to generate a control signal for pulsing a solenoid to operate an electric expansion valve.
- It is known also, as taught in U.S. Patent 4,794,762 to provide a thermistor at the inlet and outlet of the mechanical expansion means for providing a refrigerant temperature signal to a microcomputer from the high and low pressure side for comparison with high and low limits for fan and compressor clutch cutout.
- The present invention provides for direct electrical sensing of the saturation temperature of the refrigerant in a refrigeration or air conditioning system. The present invention enables a microprocessor to generate, from a look-up table of the properties of the refrigerant, an electrical control signal to cycle the compressor when the saturation pressure determined from the look-up table is out of a desired range. The present invention employs a self-heated thermistor for the purpose of determining the saturation temperature.
- The present invention employs the widely used relatively inexpensive to manufacture mechanical thermal expansion valve with the self-heated thermistor disposed at the high pressure inlet side of the valve. The signal generated by the microprocessor based on the saturation pressure is used to control cycling of the condenser cooling fan.
- A separate thermistor is disposed in the low pressure discharge line from the evaporator to sense actual refrigerant temperature. In an alternative embodiment for low pressure drop evaporators, the second thermistor may be located in the low pressure inlet line to the evaporator.
- The temperature sensed by the second thermistor is employed by a microprocessor to cycle the compressor clutch on or off based on temperature and the assumption that the temperature sensed by the second thermistor is basically saturation temperature.
- The present invention thus eliminates the need for a separate pressure switch to sense saturation pressure for controlling compressor clutch cycling and utilizing a self-heated thermistor to determine the saturation pressure on the high pressure side of the system to control cycling of the condenser cooling fan.
-
- FIGURE 1 is a pictorial schematic of the control system of the present invention;
- FIGURE 2 is a schematic of the electrical circuit of the present invention; and
- FIGURE 3 is a flow diagram of the electrical control system generation of the system of Figure 1.
- Referring now to Figure 1, the control system of the present invention, indicated generally at 10, has a
refrigerant compressor 12 coupled by means ofelectric clutch 14 to adrive pulley 16 driven bybelt 18 connected to a source of power, as for example the engine of an automotive vehicle. - High pressure refrigerant is discharged from the compressor through
conduit 20 to the condenser indicated generally at 22 which is cooled byfan 24 driven byfan motor 26. The cooled liquid refrigerant discharges from the condenser throughconduit 28 to the inlet of the expansion means such as the thermal expansion valve indicated generally at 30. The low pressure discharge of thethermal expansion valve 30 is discharged at the outlet thereof throughconduit 32 to the inlet ofevaporator 34 which absorbs heat from the surrounding air such as in the air in passenger compartment of a vehicle for providing passenger comfort therein.Evaporator 34 discharges throughconduit 36 and throughreturn passage 38 formed through thebody 31 ofexpansion valve 30 andconduit 40 to the compressor suction inlet. - A self-heated
thermistor 42 is disposed preferably invalve body 31 at the inlet for refrigerant flow thereover and receives a voltage fromjunction 52 through resistor R24 which is connected throughlead 50 tocontroller 64. In the presently preferred practice the self-heatedthermistor 42 is an NTC thermistor manufactured by Fenwall Electronics, 63 Fountain Street, Farmingham, Massachusettes 01701 and has an identification FD21J1-W and has a resistance of 100 OHMS at 25 degrees C. Junction 52 is also connected throughlead 60 to one input of acomparator 62 which is controlled by the microcomputer or microprocessor basedcontroller 64 which is powered by a power supply includingvoltage regulator 44. - A drive signal is provided along
lead 66 fromcontroller 64 tofan relay 68 which controls thefan motor 26 along lead 70.Fan relay 68 receives power for the motor alonglead 82 from junction 76. Themotor 26 has the opposite side thereof connected to the system ground along lead 72. - The
controller 64 also connected alonglead 74 to thecompressor clutch 14 which receives power through junction 76 which is powered through the operator selectswitch 78 and the vehicle power supply indicated generally at 80. Thecontroller 64 has its ground connected throughlead 84 to the system ground; and, thevoltage regulator 44 receives power throughlead 86 and junction 76. - A
second thermistor 88 is disposed in theevaporator discharge line 36 and preferably at the inlet ofpassage 38 invalve body 31. Thermistor 88 receives power directly fromjunction 54 alonglead 89 and has theremaining lead 92 thereof connected to thecomparator 62. Thethermistor 88 may alternatively be located at the evaporator inlet as shown in dashed outline in Figure 1; however, this alternative arrangement may be employed only where theevaporator 34 is of the type having a pressure drop thereacross generally not greater than about 20 psi (138KPa). - Referring now to Figure 2, the circuit schematic for the control system is shown wherein the power limiting resistor R24 receives power from the
voltage regulator 44 alonglead 50 and supplies current throughjunction 52 to the self-heatedthermistor 42 which is grounded throughlead 58 to the system ground. - The voltage at
junction 52 comprises a reference voltage and is also applied alonglead 60 through resistor R23 and to the positive input of comparator comprising a portion of device U1 atpin 5 thereof and U1 forms a part ofcomparator circuit 62 of Figure 1. The negative input atpin 4 of U1 is connected throughjunction 90 to the collector of a transistor switch Q4 which has its emitter grounded and the base receiving a signal alonglead 98 through resistor R22 from the microprocessor U3. - The microprocessor U3 employed in the present practice has a manufacturer's designation MC68HCO5TK and is available from Motorola Semiconductor Products, 2060 Elgonquin Road, Schaumburg, Illinois 60195.
- The
junction 90 is biased by the system voltage VB frompower supply 44 through resistors R20 and R21 which have thejunction 92 therebetween connected to ground through a reverse poled zener diode D4. - The comparator U1 has its output at
pin 2 thereof connected throughjunction 94 and forward poled diode D3 throughjunction 96 topin 2 of the microprocessor U3.Junction 96 is protected against transients by capacitor C8 and resistor R34 which are connected to ground. - The microprocessor U3 includes a ceramic resonator Y1 which provides a source of timing to the microprocessor through
27 and 28; and, in the presently preferred practice the resonator Y1 acts as an oscillator having a frequency of preferably four megaHertz.pins - The control circuit of the present invention receives power from the
network 44 which includes a voltage regulator device U5 which provides a regulated five (5) volts D.C. The voltage regulator U5 is available from Motorola and has a manufacturer's designation MC7805BTD. - The device U5 is protected by capacitors C14 and C13 and transient suppressors comprising diode D15 and resistor R41 in series therewith and zenior diode D14 and compacitor C15 in parallel therewith. The
network 44 provides a source of five volt power to the solid state devices U2, U3 and U4 and voltage VB of approximately 11-12 volts for powering other circuit components such as devices U1 and Q3. - In operation, the microprocessor U3 sends a signal through R2 to the base of a transistor switch Q3, turning Q3 "ON", which applies VB to R24 and causes current flow through self-heated
thermistor 42. Q3 has its collector biased to a regulated voltage VB from the power supply and its collector connected through resistor R2 to the microprocessor for receiving a signal therefrom. Upon receipt of a signal from the device U3 alonglead 98 through R22 to the base of Q4, Q4 is turned "ON"; and, Q4 keeps capacitor C1 discharged when Q4 is "ON". When the microprocessor turns Q4 "OFF" capacitor C1 charges; and the microprocessor starts counting internally. As the voltage on C1 exceeds the voltage onpin 5 of comparator U1, U1 conducts and provides a signal transition throughjunction 96 andpin 2 of the microprocessor and the microprocessor stops counting. The microprocessor U3 then reads the count as the saturation temperature from a look-up table of known properties of the particular refrigerant employed, U3 determines the saturation pressure. In operation, when the limited current flowing through the self-heatedthermistor 42 causes boiling of the refrigerant thereon, variations in the temperature are sensed by detecting changes in the voltage drop across the resistor R24 as the voltage atjunction 52, which is applied through resistor R23 to the positive input atpin 5 of U1. - This technique of determining the saturation pressure by measuring the saturation temperature is known and is described in the aforesaid U.S. Patent 4,841,734 and further detail herein is omitted for the sake of brevity.
- The microprocessor is operative in response to temperature measurement and determination of the saturation pressure by
thermistor 42 at or below 240psi 1656 (KPa) to provide an output signal alongline 66 through resistor R29 to the base of transistor switch Q6. The microprocessor turns Q6 "OFF" at 180 psi (1242KPa) in the presently preferred practice. Q6 has its emitter grounded and collector connected throughjunction 108, which is biased through resistor R32 by the system voltage VB. The input to the base of Q6 is biased through R26 by the five volt system power atjunction 110.Junction 108 is connected to the base of the power switch device Q9 which has its output pin connected throughlead 66 to thefan relay 68; and, the remaining output pin is connected to ground throughjunction 106. - In operation, when the
thermistor 42 senses the saturation pressure below 240 psi (1656KPa) microprocessor U3 provides a signal alonglead 66 to turn "OFF" Q6 which in turn turns "ON" Q9 to energize the fan relay. When thethermistor 42 senses saturation pressure above 350psi (2415KPa) the microprocessor turns Q6 and Q9 "OFF" deenergizing the fan relay and compressor clutch. - The
second thermistor 88 receives a regulated five volts from thevoltage regulator 44 alonglead 89 and the thermistor is connected tojunction 114 which is connected to inputpin 6 of device U4 which comprises a timer device bearing industry standard designation 555 and which upon receipt of a trigger signal atpin 2 thereof from the microprocessor U3 is operative to cause compacitor C12 to charge; and, the microprocessor U3 starts counting internally. When the voltage on C12 reaches the threshold voltage, U4 gives an output onpin 3 to the microprocessor U3 atpin 2 and causes the microprocessor counter to stop. The microprocessor then compares the voltage represented by the count with values in a look-up table for the particular refrigerant and the temperature derived from the table is assumed to be saturation temperature. - If the saturation temperature is above a desired value, the microprocessor is operative to emit a signal along
lead 100 to Q5 which in turn turns Q8 "ON" to energize the compressor clutch. When the temperature as measured bythermistor 88 is determined to be below a second predetermined value, the microprocessor is operative to turn "ON" Q5 and turns Q8 "OFF" to deenergize thecompressor clutch 14. Microprocessor U3 provides an output signal alonglead 100 tojunction 102 and through resistor R28 to the base of transistor Q5 which has its emitter grounded and its collector connected tojunction 104.Junction 104 is biased through resistor R31 by the voltage VB and connected to the base of power switch device Q8, which applies power through its output junction alonglead 74 to thecompressor clutch 14. - Q5 is turned "ON", causing Q8 to be turned "OFF" by the microprocessor U3 when the temperature measured by the
thermistor 88 is below 18 degrees F and turned "ON" when the temperature measured by T₈₈ is greater than 40 degrees F. The remaining lead of power switch Q8 is connected throughjunction 106 which is connected through resistor R37 to ground for completing the circuit to the compressor clutch. - Device U4 has
pin 5 thereof grounded through capacitor C5 andpin 4 comprising a reset connected to the microprocessor bylead 118. Thethermistor 88 in the present practice comprises a 30K OHM NTC thermistor available from Fenwall Electronics, 63 Fountain Street, Farmingham, Massachusettes 01701, and bears manufacturer's designation UUR43J21. Capacitor C4 is placed across the leads ofthermistor 88 for transient suppression. - The output drivers Q8 and Q9 have their output lines protected against transients by the diode network comprising forward poled diode D9 connected to lead 74 and forward poled diode D12 connected to lead 66 in series with reversed poled zener diode D13 connected to
junction 112.Power supply 44 includes a high and low battery voltage detection circuit indicated generally at 120 which applies the 11 volt system voltage VB to resistor R16 and R17 series connected to ground with thejunction 122 therebetween connected to the positive input of acomparator comprising pin 7 of device U1 through limiting resistor R10. A transient suppression capacitor C6 is connected fromjunction 122 to ground. The negative input of thecomparator comprising pin 6 of device U1 is connected through limit resistor R12 tojunction 124 which is connected to the center tap between resistors R14 and R15 which are series connected to ground with the regulated five volt supply voltage applied to resistor R14. When the voltage from the divider comprising resistors R16 and R17 which may be expressed at follows:
exceeds the voltage from the divider receiving the regulated five volts which may be expressed as:
the device U1 conducts throughpin 1 and lead 126 through forward poled diode D5 tojunction 128 which is connected to an input of the microprocessor U3. -
- VLO is applied through limiting resistor R13 to a negative input at
pin 8 of device U1 which has applied to a positive input atpin 9 thereof the voltage fromjunction 124 through limit resistor R11. The device U1 thus acts as a comparator and when the voltage at junction 130 VLO is less than the voltage VREF atjunction 124, U1 conducts through itsoutput pin 14 alongline 132 through forward poled diode D6 tojunction 128 and the input of the microprocessor. The output of U1 atpin 1 is provided with a positive feedback resistor R9 and is biased from the regulated five volt supply through resistor R6. Similarly, the output atpin 14 of U1 is provided with a positive feedback resistor R8 and is biased by the five volt regulated supply through resistor R7. - When the microprocessor receives a signal from
junction 128 indicating that the battery voltage is either above a predetermined high value of 17 volts or less than a predetermined value of 8.5 volts, the microprocessor is operative to provide a signal alongoutput lead 100 to disable the clutch 14 alonglead 74. - The microprocessor is reset by voltage from
junction 134 which is biased by the five volt regulated supply through resistor R45 as applied tojunction 134 which is grounded through capacitor C16,junction 134 being connected to the input resetpin 1 of U3. - An overcurrent protection circuit is provided, indicated generally at 136, and utilizes resistor R37. The output current through drivers Q8, Q9 is sensed by R37 through
junction 106. If either the compressor clutch or the fan relay load is shorted, a greater voltage drop occurs across R37; and, this voltage drop is applied through resistors R36, R35 as inputs at 2 and 3 of a amplifier comprising device U2. The output atpins pin 1 of U2 is applied through resistor R39 to the negative input atpin 6 of comparator portion of device U2 which has the positive input atpin 5 biased through resistor R27 to a reference voltage fromjunction 138.Junction 138 is biased by a voltage divider network comprising resistor R30 and R33 in series with R30 supplied with five volts regulated and R33 grounded, thus providing the voltage: - When the voltage at
input pin 6 of comparator U2 is equal to or greater than a reference voltage applied to pin 5 of U2, U2 conducts atoutput pin 6 throughjunction 140.Junction 140 is connected to an input of the microprocessor and also alonglead 140 through reistor R41 to pin 11 of the positive input of a comparator portion of U1. Thenegative input pin 10 of a comparator portion of U1 is biased through resistor R42 with V₁₃₈. When the voltage output of U2 atpin 7 as applied to pin 11 of U1 is greater than the reference voltage V₁₃₈, U1 conducts throughoutput pin 13 which is connected tojunction 146 which is connected through reverse poled diodes D7, D8 to the base of Q8 and Q9, thereby turning "OFF" Q8 and Q9 and stopping the overcurrent condition.Junction 146 is biased by the system voltage VB through resistor R44 and the output atpin 13 of U1 has a positive feedback resistor R43 connected to pin 11 at the input of U1. - When the amplifier U2 conducts at pin 1 a capacitor C10 connected between
pin 6 of U2 and ground is charged. When Q8 and Q9 are turned "OFF", the voltage drop across R37 ceases and output of U2 atpin 1 goes low; however, C2 maintains a charge oninput pin 6 of comparator U2 so that the output of U2 atpin 7 remains low thereby holding Q8 and Q9 "OFF" until capacitor C10 bleeds down through resistor R39. Diode D11 which is forward poled fromoutput pin 1 of U2 to capacitor C10 provides a fast charge path for capacitor C10 and prevents a fast discharge to prevent oscillatory action. D13 is provided for protection against transients or spike due to the inductance of the load. - Referring now to Figure 3, the microprocessor is powered up to the system twelve volts at
step 144 by closure of switch 78 (see Fig. 1); and, atstep 146 the minimum compressor "ON" time lag is set for deep cycle. - If the temperature measured by
thermistor 88, T₈₈, is less than 75 degrees F then the compressor clutch "ON" time is 7 seconds. If the temperature T₈₈ is between 75 and 90 degrees F then the compressor clutch "ON" time is 60 seconds; and, if T₈₈ is greater than 90 degrees F then a full deep cycle compressor clutch "ON" time is set at 180 seconds. - At step 148 a determination is made whether T₈₈ is less than the clutch "OFF" temperature which in the presently preferred practice is 18 degrees F; and, if T₈₈ is not less than 18 degrees F, the
compressor clutch 14 and thefan relay 68 are both energized atstep 150. - A ten second timer delays, at
step 152, the energization of the 18 OHM load resistor R24, for the self-heated thermistor 42 as indicated atstep 154. - A determination is made at
step 156 as to whether T₈₈ is less than the clutch "OFF" temperature of 18 degrees F; and, if not, then a determination is made atstep 158 whether the saturation temperature of the self-heated thermistor T₄₂ is greater than the high pressure cut-out temperature which in the presently preferred practice is set at 350 psi (2415KPa). If the temperature T₄₂ is greater than the HPCO pressure of 350 psi then the HPCO flag is set at step 160, which in the presently preferred practice is for a period of twenty seconds. Following the twenty second delay in step 160 the clutch is disengaged and the fan is disengaged; and, the self-heat minimum "ON" flag is cleared atstep 162. - At
step 164, a determination is made as to whether the HPCO flag has timed out; and, if it has, a determination is made atstep 166 whether T₈₈ is greater than the clutch "ON" temperature which in the presently preferred practice is 40 degrees F. If T₈₈ atstep 166 is greater than 40 degrees F, the clutch is energized; and, the minimum "ON" flag is set for applying power to the 18 OHM load resistor R24 for a period of seven seconds atstep 168. - Returning to step 156, if the temperature T₈₈ is less than the clutch "OFF"
temperature 18 degrees F, a determination is made atstep 170 whether the minimum time has been satisfied; and, if it has, the microprocessor proceeds to step 162. However, if the minimum time atstep 170 has not been satisfied a determination is made atstep 172 as to whether T₈₈ is less than the clutch "OFF" temperature of 18 degrees F; and, if not, the system proceeds to step 158. However, if T₈₈ is less than 18 degrees F atstep 172, the system proceeds to step 162 to disengage the clutch and fan. - Returning to step 158, if the self-heated thermistor temperature T₄₂ is not greater than the HPCO pressure of 350 psi, a determination is made at
step 174 whether T₄₂ is greater than the fan "ON" pressure which is preferably 240 psi (276KPa); and, if this is the case, the condenser fan is turned on atstep 176 and the system returns to step 156. However, if T₄₂ atstep 174 is not greater than the fan "ON" pressure of 240 psi (1655KPa) a determination is made atstep 178 whether T₄₂ is less than the fan "OFF" pressure which is preferably 180 psi (1241KPa); and, if this is the case, the microprocessor turns "OFF" the condenser fan atstep 180, whereupon the system returns to step 156. However, if it is determined atstep 178 that T₄₂ is not less than the fan "ON" pressure of 240 psi,, the system returns to step 156 with the condenser fan remaining on. -
- The present invention thus provides a unique and novel control system for a refrigeration or air conditioning system wherein a mechanical thermal expansion valve is employed but thermistors are disposed in the system to sense temperature electrically thereby enabling a microprocessor controller to provide control signals for the electrically operated compressor clutch and condenser fan motor. The present invention employs a self-heated thermistor at the inlet or high pressure side of the thermal expansion valve to enable determination of saturation pressure in the high pressure side of the system for providing signals to cycle the condenser fan. A direct refrigerant temperature sensing thermistor is employed at the evaporator outlet, or alternatively the evaporator inlet for low pressure drop evaporators, to enable a determination of saturation temperature from a look-up table of refrigerant properties to provide an electrical control signal for cycling the compressor clutch.
- The present invention thus provides a unique and novel system for electronically controlling the compressor clutch and condenser fan in an air conditioning system and yet permits the use of a economical and reliable mechanical thermal expansion valve.
- Although the invention has hereinabove been described with respect to the illustrated embodiments, it will be understood that the invention is capable of modification and variation and is limited only by the following claims.
Claims (4)
- A refrigerant control system comprising:(a) pump means including condenser means providing a source of pressurized liquid refrigerant;(b) expansion valve means with a body having an inlet and outlet including conduit means operative to communicate pressurized liquid refrigerant from said pump means to the inlet thereof and having a valve member disposed in said body and movable therein for controlling flow of said liquid to said outlet for expansion;(c) blower means operative for circulating air over said condenser means;(d) evaporator means having an inlet and outlet and connected for receiving refrigerant flow at the inlet thereof from the outlet of said valve means and operative to absorb heat from a compartment to be refrigerated and effect vaporization of said refrigerant for discharge at the outlet thereof;(d) said valve means body including a continuous passage therethrough connected to receive refrigerant flow from said evaporator means outlet and discharge refrigerant flow to the inlet of said pump means;(e) said valve means further including actuator means responsive to the temperature of the refrigerant in said continuous passage operable for moving said valve member;(f) first thermistor means disposed in said inlet of said valve means body and including current limiting resistance means electrically in series with said thermistor means;(g) first circuit means operative to provide a flow of current to said thermistor means sufficient to cause boiling of refrigerant coming into contact therewith including means operative to determine the temperature of said flow at said boiling;(h) second circuit means operative to compare said temperature with saturation values in a look-up table and convert said temperature to saturation pressure, said second circuit means operative to cycle said blower means responsive to said pressure;(i) second thermistor means disposed at the outlet of said evaporator for sensing the temperature of the flow of refrigerant thereof; and(j) second circuit means receiving a signal from said second thermistor means and operative to energize said pump means when said sensed temperature is greater than a predetermined "ON" temperature and operative to deenergize said pump means when said sensed temperature is less than a predetermined "OFF" temperature.
- The system defined in claim 1, wherein said first circuit means is operable to deenergize said pump means when said saturation pressure is less than a predetermined value indicative of low refrigerant charge.
- The system defined in claim 1, wherein said first circuit means includes means operative to select a value from a plurality of values of current for flow through said thermistor.
- The control system defined in claim 1, wherein said evaporator means has a pressure difference between the inlet and outlet thereof not greater than 20 psi (138 KPa) and said second thermistor means is disposed at the inlet of said evaporator.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP95108387A EP0678717B1 (en) | 1990-01-31 | 1991-01-22 | Thermostatic expansion valve with electronic controller |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US07/473,066 US4944160A (en) | 1990-01-31 | 1990-01-31 | Thermostatic expansion valve with electronic controller |
| US473066 | 1990-01-31 |
Related Child Applications (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP95108387.2 Division-Into | 1991-01-22 | ||
| EP95108387A Division EP0678717B1 (en) | 1990-01-31 | 1991-01-22 | Thermostatic expansion valve with electronic controller |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP0440073A1 true EP0440073A1 (en) | 1991-08-07 |
Family
ID=23878046
Family Applications (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP91100767A Ceased EP0440073A1 (en) | 1990-01-31 | 1991-01-22 | Thermostatic expansion valve with electronic controller |
| EP95108387A Expired - Lifetime EP0678717B1 (en) | 1990-01-31 | 1991-01-22 | Thermostatic expansion valve with electronic controller |
Family Applications After (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP95108387A Expired - Lifetime EP0678717B1 (en) | 1990-01-31 | 1991-01-22 | Thermostatic expansion valve with electronic controller |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US4944160A (en) |
| EP (2) | EP0440073A1 (en) |
| JP (1) | JP3060323B2 (en) |
| DE (1) | DE69132556T2 (en) |
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| CN114518192B (en) * | 2022-02-25 | 2023-06-02 | 黄河水利职业技术学院 | Detection circuit for mobile base station |
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|---|---|---|---|---|
| US4167858A (en) * | 1976-10-27 | 1979-09-18 | Nippondenso Co., Ltd. | Refrigerant deficiency detecting apparatus |
| US4790145A (en) * | 1987-11-13 | 1988-12-13 | Eaton Corporation | Superheat control of air conditioning system incorporating fuel cooler |
| US4794762A (en) * | 1987-01-27 | 1989-01-03 | Eaton Corporation | Refrigerant flow control system |
| US4835976A (en) * | 1988-03-14 | 1989-06-06 | Eaton Corporation | Controlling superheat in a refrigeration system |
| US4841734A (en) * | 1987-11-12 | 1989-06-27 | Eaton Corporation | Indicating refrigerant liquid saturation point |
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| US4120173A (en) * | 1977-06-02 | 1978-10-17 | Borg-Warner Corporation | Head pressure control system for refrigeration apparatus |
| US4395886A (en) * | 1981-11-04 | 1983-08-02 | Thermo King Corporation | Refrigerant charge monitor and method for transport refrigeration system |
| US4474022A (en) * | 1982-12-30 | 1984-10-02 | Standard Oil Company | Ambient air assisted cooling system |
| US4614087A (en) * | 1983-08-09 | 1986-09-30 | Nihon Radiator Co., Ltd. | Apparatus for alarming abnormal coolant in space cooling cycle |
| US4490987A (en) * | 1983-12-05 | 1985-01-01 | General Motors Corporation | Vehicle air conditioning system |
| DE3778003D1 (en) * | 1987-01-27 | 1992-05-07 | Eaton Corp | SYSTEM FOR CONTROLLING THE AIR COOLING. |
-
1990
- 1990-01-31 US US07/473,066 patent/US4944160A/en not_active Expired - Lifetime
-
1991
- 1991-01-22 EP EP91100767A patent/EP0440073A1/en not_active Ceased
- 1991-01-22 EP EP95108387A patent/EP0678717B1/en not_active Expired - Lifetime
- 1991-01-22 DE DE69132556T patent/DE69132556T2/en not_active Expired - Fee Related
- 1991-01-31 JP JP3031900A patent/JP3060323B2/en not_active Expired - Fee Related
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4167858A (en) * | 1976-10-27 | 1979-09-18 | Nippondenso Co., Ltd. | Refrigerant deficiency detecting apparatus |
| US4794762A (en) * | 1987-01-27 | 1989-01-03 | Eaton Corporation | Refrigerant flow control system |
| US4841734A (en) * | 1987-11-12 | 1989-06-27 | Eaton Corporation | Indicating refrigerant liquid saturation point |
| US4790145A (en) * | 1987-11-13 | 1988-12-13 | Eaton Corporation | Superheat control of air conditioning system incorporating fuel cooler |
| US4835976A (en) * | 1988-03-14 | 1989-06-06 | Eaton Corporation | Controlling superheat in a refrigeration system |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| FR2862745A1 (en) * | 2003-11-25 | 2005-05-27 | Valeo Climatisation | Air pressure regulator for coolant circulation loop of ventilation, heating and/or air conditioning apparatus, has temperature and pressure sensors forming unitary assembly, and electronic card for controlling and monitoring valve |
| EP1536193A1 (en) * | 2003-11-25 | 2005-06-01 | Valeo Climatisation | Expansion member with built-in electronic for air-conditioning unit cooling circuit in particular for a motor vehicle |
Also Published As
| Publication number | Publication date |
|---|---|
| US4944160A (en) | 1990-07-31 |
| JP3060323B2 (en) | 2000-07-10 |
| JPH0560404A (en) | 1993-03-09 |
| DE69132556T2 (en) | 2001-10-18 |
| EP0678717A3 (en) | 1996-04-03 |
| EP0678717A2 (en) | 1995-10-25 |
| EP0678717B1 (en) | 2001-03-14 |
| DE69132556D1 (en) | 2001-04-19 |
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